System and Method for Automatically and Independently Controlling Wheel Torque or Speed Usiing Wheel Hubs having Engagement/Disengagement Mechanisms Integrated Therewith
A system and method for controlling torque and/or speed of wheels of a vehicle. The system and method receive one or more vehicle operating signals. Based on the received vehicle operating signals, the system and method determine whether one or more of a vehicle's wheels require torque or speed modification. If it is determined that one or more of the vehicle's wheels requires torque or speed modification, the system and method modifies the torque to drive, or speed of, a wheel or wheels based on the received vehicle operating signals. The modification is automatic and/or independent for each wheel. Some or all wheels can be coupled to respective wheel hubs having incorporated therewith an engagement/disengagement mechanism. The system and method can control the engagement/disengagement mechanism to modify the torque at, or speed of, the associated wheel based on the received vehicle operating signal or signals.
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The present application claims the benefit of U.S. Provisional Patent Application No. 60/968,396 filed Aug. 28, 2007, which is hereby incorporated by reference in its entirety.
BRIEF SUMMARY OF THE INVENTIONThe present invention relates generally to a system and method for automatically and/or independently controlling wheel torque and/or wheel speed using wheel hubs. In various embodiments, each wheel hub has an engagement/disengagement mechanism integrated therewith.
Embodiments are directed generally to a system and method for controlling wheel torque and/or wheel speed of a vehicle. In particular, various embodiments can include (i.e., comprise) a system and method for controlling at least one of a torque to drive and a speed of at least one wheel of a plurality of wheels of a vehicle, wherein some or all of the wheels are coupled to wheel hubs. Some or all of the wheel hubs may have an engagement/disengagement mechanism integrated therewith. In various embodiments, the system and method can include electronically receiving one or more vehicle operating signals and automatically determining, based on the received signals, that fewer than all of the vehicle's wheels require torque and/or speed modification for wheel control of the vehicle. In response to the automatically determining, the system and method may automatically and/or independently modify the torque or wheel speed to drive at least one of the wheels based on the received vehicle operating signals. A controller may output control signals to modify the torque or speed of a wheel or wheels. In various embodiments, the controller may send the control signals to one or more control mechanisms to modify or control the torque or speed of a wheel or wheels. In various embodiments, the wheel hubs can be located at some or all of the wheels, and each of the wheel hubs can be automatically and/or independently controlled to modify the torque to drive its respective wheel or to modify the wheel speed. Further, in various embodiments, each of the wheel hubs may have an engagement/disengagement mechanism incorporated therewith, and the engagement/disengagement mechanism can be automatically and/or independently controlled to modify the torque to drive the respective wheel or to modify the wheel speed. Various embodiments of the present invention may improve torque vectoring and thereby provide better vehicle control; reduce rolling resistance as compared with standard geared hubs, thereby improving a vehicle's efficiency; reduce driveline weight; and improve packaging within a vehicle.
Embodiments of the present invention can also include a system for selectively controlling torque or speed of wheels of a vehicle, wherein the wheels may include four wheels. The system can have means for electronically receiving at least one vehicle operating signal; means for determining, based on the received at least one vheicle operating signal, whether a selected one of the wheels requires torque or speed modification; means for outputting control signals to modify a torque to drive or speed of the selected wheel based on the received at least one vehicle operating signal; and means for selectively controlling the selected wheel to modify the torque to drive or speed of the wheel based on control signals received from the means for outputting control signals. The means for outputting may be configured to output control signals if it is determined that the wheel requires torque modification, and the means for outputting control signals may be configured to independently and automatically control the means for selectively controlling in response to the determination that the wheel requires torque modification.
Various embodiments of the present invention can also include a vehicle. The vehicle can have a main drive shaft which may be coupled at opposite ends to a front axle and to a rear axle; a plurality of wheel hubs, wherein respective ones of the wheel hubs may be coupled to ends of the front axle and to ends of the rear axle; a plurality of wheels, wherein at least two of the wheels may be coupled to respective wheel hubs; a controller that can be configured to receive vehicle operating signals and to determine, based on the received vehicle operating signals, that a plurality of the wheels require independent torque or speed modification. The plurality of wheels determined to require independent torque or speed modification may include a first wheel and a second wheel. The vehicle also can include a first wheel hub controller which may be adjacent to the first wheel, and can be configured to control individually the torque or speed of the first wheel; and a second wheel hub controller which may be adjacent to the second wheel, and can be configured to control individually the torque or speed of the second wheel independently of the first wheel. The controller can be configured to send a control signal to the first wheel hub controller and a different control signal to the second wheel hub controller to control independently and electronically the torque or speed of each of the first and second wheels determined to require torque or speed modification.
Front axle 106 can be coupled to main drive shaft 104 and to wheels 112, via wheel hubs 110. In various embodiments, each end of front axle 106 can be coupled to one wheel 112 via one wheel hub 110. In various embodiments, wheel hub 110 may be omitted and front axle 106 can be connected only to wheels 112.
Rear axle 108 can be coupled to main drive shaft 104 and to wheels 112, via wheel hubs 110. In various embodiments, each end of rear axle 108 can be coupled to one wheel 112 via one wheel hub 110. In various embodiments, wheel hub 110 may be omitted and rear axle 108 can be connected only to wheels 112. One or more of the wheel hubs 110 in
Wheel hubs 110 can be coupled in any suitable manner to each end of front and rear axles 106, 108, respectively, and to respective wheels 112. In various embodiments, wheel hubs 110 may be any suitable wheel hub, including, but not limited to, geared wheel hubs and non-geared wheel hubs which can provide a reduction feature from the respective axles to wheels 112. In various embodiments, the reduction feature can be a gear reduction feature. A non-geared wheel hub can represent a wheel hub having no internal gearing. The wheel hub 110 can further include a spindle for mounting of the wheel. In various embodiments, wheel hubs 110 may be coupled to both front axle 106 and rear axle 108, coupled only to front axle 106, or coupled only to rear axle 108. Further, the determination of the wheels at which wheel hubs 110 are implemented may be based on the type of drive train. For example, if the drive train includes a rear-wheel drive train, wheel hubs 110 may be implemented only at rear axle 108 and rear wheels 112. However, wheel hubs 110 may be implemented at all of the wheels 112 regardless of the type of drive train. Wheel hubs 110 are also electrically coupled to controller 114. In various embodiments, wheel hubs 110 can be controlled by controller 114 to modify the torque at, or speed of, wheels 112 as discussed herein.
In various embodiments, wheel hubs 110 can include an engagement/disengagement mechanism 118. The engagement/disengagement mechanism 118 can be included with the wheel hub 110 as an integrated unit. Engagement/disengagement mechanism 118 may be any suitable engagement/disengagement mechanism, including, but not limited to a clutch or variable ratio device, such as a continuously variable transmission (CVT) or the like. In various embodiments, the clutch can be a progressive engagement clutch or the like. Engagement/disengagement mechanism 118 may be operated in any suitable manner, including, but not limited to, hydraulically, pneumatically, etc. In various embodiments, engagement/disengagement mechanism 118 may, for example, disengage a geared portion of the associated wheel hub 110 so that the corresponding wheel 112 can spin freely or rotate without turning the associated front or rear axles 106, 108 (or axle half shaft). In various embodiments, each wheel 112 can be progressively engaged by engagement/disengagement mechanism 118 and allowed to spin at a speed different than other wheels 112. Moreover, in various embodiments, each wheel 112 may be either engaged by engagement/disengagement mechanism 118 and driven by its associated axle 106, 108, or be partially driven, or fully freewheel (e.g., engagement/disengagement mechanism 118 fully disengaged), depending on the need for torque or wheel speed at each wheel 112. For example, control of engagement/disengagement mechanisms 118 may allow for differential wheel speed and for selectively driving wheels 112 respectively associated therewith.
Vehicle 102 can include any suitable type of wheels 112 and any suitable number of wheels 112, such as, but not limited to, two, three, four, six, etc. In various embodiments, and as shown in
Controller 114 may be located at any suitable position in or on vehicle 102. Controller 114 can be any suitable controller, including, but not limited to, a microcomputer, a microprocessor, a microcontroller, a computing device, a circuit board or boards using electronic components, etc. Controller 114 can be configured to operate in accordance with a sequence of programmed instructions to cause torque or speed control operations to be performed as discussed herein. The controller 114 can further include a memory in which the programmed instructions are encoded or stored. In various embodiments, controller 114 can be coupled to each wheel hub 110. Controller 114 can also receive one or more vehicle operating signals 116. The one or more vehicle operating signals 116 can be received from any suitable vehicle operating system and sent by any suitable means. Vehicle operating systems can include, but are not limited to, shaft systems, engine systems, including a throttle system, wheel measuring systems, steering systems, vehicle dynamic systems, etc. In various embodiments, vehicle operating signals can include, but are not limited to, a half-shaft speed signal, a throttle position signal, a wheel speed signal, a steering angle signal, an engine speed signal, a transmission signal, a pitch signal, a roll signal, and a yaw signal. In various embodiments, controller 114 can be configured to determine, based on the one or more vehicle operating signals 116, whether torque at one or more vehicle wheels 112 requires modification or whether wheel speed requires modification. In various embodiments, controller 114 may make this determination using any suitable means and/or methods, including, but not limited to, a lookup table, a database, torque vector calculations, etc. If controller 114 determines that torque at, or speed of, one or more wheels 112 requires modification, controller 114 may control wheel hubs 110 to modify the torque applied at the requisite wheel or wheels 112 based on the one or more vehicle operating signals 116. In various embodiments, controller 114 may automatically and/or independently control wheel hubs 110 to modify the torque applied at the requisite wheel or wheels 112 based on the one or more vehicle operating signals 116. Controller 114 may also control wheel hubs 110 to modify the wheel speed based on the one or more vehicle operating signals 116. In various embodiments, controller 114 may also control wheel hubs 110 to modify the wheel speed based on the one or more vehicle operating signals 116.
In various embodiments, controller 114 may control the determined wheel hub or hubs 110 by sending signals to control mechanisms (not shown) associated with each wheel hub 110. In various embodiments, controller 114 may automatically and/or independently control the determined wheel hub or hubs 110 by sending signals to control mechanisms (not shown) associated with each wheel hub 110 The signals can be digital, analog, or a combination thereof. Each control mechanism can, for example, based on the signal or signals received from controller 114, progressively engage or disengage, completely engage, or completely disengage wheel hub 110. As but one example, the control mechanisms can be means to control pressurized hydraulic fluid in the wheel hubs 110 to engage or disengage wheel hubs 110 in the manner discussed above. As another non-limiting example, control mechanisms can also be servos which engage or disengage wheel hubs 110 in the manner as discussed above. According to various embodiments, controller 114 can control the determined wheel hub 110 so that the geared portion (not shown in
In operation, controller 114 can control the pressure of the hydraulic fluid that is introduced into wheel hub 110 via channel 220 using a control mechanism (not shown), such as, but not limited to, a pump. In various embodiments, controller 114 can control the pressure of hydraulic fluid to fully engage, partially engage, or completely disengage axle 222 from gears 204, 206. For example, controller 114 can increase the pressure of the hydraulic fluid to force piston 214 through cylinder 216 away from clutch 208. Forcing piston 214 away from clutch 208 can activate clutch 208, whereby gears 204, 206 are disengaged or partially disengaged from axle 222. Conversely, for example, controller 114 can decrease or maintain the pressure of the hydraulic fluid to either move or maintain piston 214 in a position in which clutch 208 is not activated. In various embodiments, a non-activated state of clutch 208 can mean that gears 204, 206 are engaged with axle 222.
Thus has been disclosed a a system and method for controlling wheel torque and/or wheel speed of a vehicle. In particular, various embodiments can comprise a system and method for controlling torque applied to wheels of a vehicle and/or wheel speed of wheels of the vehicle, wherein some or all of the wheels are coupled to wheel hubs. Further, in various embodiments, each of the wheel hubs has an engagement/disengagement mechanism integrated therewith. The system and method can automatically and/or independently control either the wheel hubs (or the respective engagement/disengagement mechanism if integrated in the wheel hubs), to modify either the torque applied to the associated wheels of the vehicle or the wheel speed, based on received vehicle operating signal or signals.
While the present invention has been described in conjunction with a number of embodiments, the invention is not to be limited to the description of the embodiments contained herein, but rather is defined by the claims appended hereto and their equivalents. It is further evident that many alternatives, modifications and variations would be or are apparent to those of ordinary skill in the applicable arts. Accordingly, all such alternatives, modifications, equivalents, and variations that are within the spirit and scope of this invention.
Claims
1. A wheel control method for automatically and independently controlling torque at, or speed of, a plurality of wheels of a vehicle, at least two of said wheels being coupled to respective wheel hubs, said method comprising:
- electronically receiving one or more vehicle operating signals;
- automatically determining, based on said electronically received one or more vehicle operating signals, that fewer than all of said wheels require torque or speed modification for wheel control; and
- in response to said automatically determining that fewer than all of said wheels require torque or speed modification, automatically and independently modifying a torque applied at, or speed of, one or more of said wheels based on said one or more electronically received vehicle operating signals,
- wherein each said wheel hub includes an engagement/disengagement mechanism integrated therewith, and
- wherein said automatically and independently modifying includes sending a control signal to a control mechanism to control the engagement/disengagement mechanism associated with each wheel whose torque or speed is to be modified.
2. The method according to claim 1, wherein the one or more vehicle operating signals are selected from the group consisting of a half-shaft speed signal, a throttle position signal, a wheel speed signal, a steering angle signal, an engine speed signal, a transmission signal, a pitch signal, a roll signal, and a yaw signal.
3. The method according to claim 1, wherein each said wheel is coupled to a respective wheel hub.
4. The method according to claim 1, wherein said controlling of the engagement/disengagement mechanism includes one of disengaging, engaging, progressively disengaging, or progressively engaging the engagement/disengagement mechanism for the associated wheel.
5. The method according to claim 1, wherein each said engagement/disengagement mechanism is a progressive engagement clutch.
6. The method according to claim 1, wherein control of the engagement/disengagement mechanism is for differential wheel speed.
7. The method according to claim 1, wherein each said wheel hub is a geared wheel hub.
8. The method according to claim 1, wherein each said wheel hub is a non-geared wheel hub.
9. A system for selectively controlling torque at wheels of a vehicle, said wheels including four wheels, and said system comprising:
- means for electronically receiving at least one vehicle operating signal;
- means for determining, based on said received at least one vehicle operating signal, whether a selected one of said wheels requires torque modification;
- means for outputting control signals to modify a torque to drive said wheel based on said received at least one vehicle operating signal, said means for outputting being configured to output control signals if it is determined that said wheel requires torque modification; and
- means for selectively controlling said wheel to modify the torque to drive said wheel based on control signals received from said means for outputting control signals, and
- wherein said means for outputting control signals is configured to independently and automatically control said means for selectively controlling in response to the determination that said wheel requires torque modification.
10. The system according to claim 9, wherein the at least one vehicle operating signal is selected from the group consisting of a half-shaft speed signal, a throttle position signal, a wheel speed signal, a steering angle signal, an engine speed signal, a transmission signal, a pitch signal, a roll signal, and a yaw signal.
11. The system according to claim 9,
- wherein said means for selectively controlling said wheel includes a plurality of wheel hubs, one said wheel hub being associated with each said wheel, and
- wherein said means for outputting control signals is further configured to independently and automatically control an associated one of said wheel hubs in response to the determination that said wheel requires torque modification.
12. The system according to claim 11, wherein each said wheel hub includes a variable ratio device.
13. The system according to claim 11,
- wherein each said wheel hub includes an engagement/disengagement mechanism, and
- wherein said means for outputting control signals is configured to cause each said engagement/disengagement mechanism to one of disengage, engage, progressively disengage, or progressively engage the associated wheel.
14. The system according to claim 13, wherein each said engagement/disengagement mechanism is a progressive engagement clutch.
15. The system according to claim 11, wherein each said wheel hub is one of a geared wheel hub and a non-geared wheel hub.
16. The system according to claim 11,
- wherein said means for selectively controlling said wheel includes a plurality of wheel hubs, one said wheel hub being associated with each said wheel, and
- wherein said means for outputting control signals independently and automatically controls an associated one of said wheel hubs whose torque is to be modified in response to the determination that said wheel requires torque modification.
17. A vehicle, comprising:
- a main drive shaft coupled at opposite ends to a front axle and to a rear axle;
- a plurality of wheel hubs, respective ones of said wheel hubs being coupled to ends of the front axle and to ends of the rear axle;
- a plurality of wheels, at least two of said wheels being coupled to respective wheel hubs;
- a controller configured to receive vehicle operating signals and to determine, based on the received vehicle operating signals that a plurality of said wheels require independent torque or speed modification, the plurality of said wheels including a first wheel and a second wheel;
- a first wheel hub controller adjacent to the first wheel, the first wheel hub controller configured to control individually the torque or speed of the first wheel;
- a second wheel hub controller adjacent to the second wheel, the second wheel hub controller configured to control individually the torque or speed of the second wheel independently of the first wheel,
- wherein said controller is configured to send a control signal to the first wheel hub controller and a different control signal to the second wheel hub controller to control independently and electronically the torque or speed of each of said first and second wheels determined to require torque or speed modification.
18. The vehicle according to claim 17,
- wherein each said wheel hub includes an engagement/disengagement mechanism integrated therewith,
- wherein said engagement/disengagement mechanism is individually controlled to modify the torque or speed to drive the associated wheel, and
- wherein respective ones of said wheel hubs associated with wheels whose torque or speed is determined to be modified are individually controlled to modify the torque or the speed of the associated wheel.
19. The vehicle according to claim 18, wherein said engagement/disengagement mechanism is a progressive engagement clutch.
20. The vehicle according to claim 17, wherein the one or more vehicle operating signals are selected from the group consisting of a half-shaft speed signal, a throttle position signal, a wheel speed signal, a steering angle signal, an engine speed signal, a transmission signal, a pitch signal, a roll signal, and a yaw signal.
Type: Application
Filed: Aug 27, 2008
Publication Date: Mar 5, 2009
Patent Grant number: 8340880
Applicant:
Inventors: William C. Craig (Endicott, NY), Richard S. Stevens (Endicott, NY)
Application Number: 12/199,035
International Classification: B60K 17/354 (20060101); G06F 19/00 (20060101);